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运用成分建模识别情绪的功能核心过程的大脑网络。

Brain networks subserving functional core processes of emotions identified with componential modeling.

机构信息

Laboratory for Behavioral Neurology and Imaging of Cognition, Department of neuroscience, University of Geneva, CH-1202 Geneva, Switzerland.

School of Computer Science and Engineering, University of New South Wales, Sydney, NSW 2052, Australia.

出版信息

Cereb Cortex. 2023 Jun 8;33(12):7993-8010. doi: 10.1093/cercor/bhad093.

Abstract

Despite a lack of scientific consensus on the definition of emotions, they are generally considered to involve several modifications in the mind, body, and behavior. Although psychology theories emphasized multi-componential characteristics of emotions, little is known about the nature and neural architecture of such components in the brain. We used a multivariate data-driven approach to decompose a wide range of emotions into functional core processes and identify their neural organization. Twenty participants watched 40 emotional clips and rated 119 emotional moments in terms of 32 component features defined by a previously validated componential model. Results show how different emotions emerge from coordinated activity across a set of brain networks coding for component processes associated with valuation appraisal, hedonic experience, novelty, goal-relevance, approach/avoidance tendencies, and social concerns. Our study goes beyond previous research that focused on categorical or dimensional emotions, by highlighting how novel methodology combined with theory-driven modeling may provide new foundations for emotion neuroscience and unveil the functional architecture of human affective experiences.

摘要

尽管科学界对于情绪的定义尚未达成共识,但人们普遍认为情绪涉及心理、身体和行为等多个方面的变化。尽管心理学理论强调情绪具有多成分特征,但对于大脑中这些成分的性质和神经结构仍知之甚少。我们使用多元数据驱动方法,将广泛的情绪分解为功能核心过程,并确定其神经组织。二十名参与者观看了 40 个情绪片段,并根据之前经过验证的成分模型定义的 32 个成分特征,对 119 个情绪时刻进行了评分。研究结果表明,不同的情绪是如何从一系列大脑网络的协调活动中产生的,这些大脑网络编码与价值评估、享乐体验、新奇感、目标相关性、趋近/回避倾向以及社会关注等相关的成分过程。与之前关注类别或维度情绪的研究相比,我们的研究通过强调新颖的方法与理论驱动的建模相结合如何为情绪神经科学提供新的基础,并揭示人类情感体验的功能架构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c24/10267645/95547ae6a5ae/bhad093f1.jpg

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